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Numerical Modeling of Proton Exchange Membrane Fuel Cell With Considering Thermal and Relative Humidity Effects on the Cell Performance

机译:考虑热和相对湿度对电池性能影响的质子交换膜燃料电池数值模拟

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摘要

A three-dimensional (3D) model has been developed to simulate proton exchange membrane fuel cells. The model accounts simultaneously for electrochemical kinetics, current distribution, hydrodynamics, and multi-components transport. A single set of conservation equations of mass, momentum, energy, species, and electric current are developed and numerically solved using a finite-volume-based computational fluid dynamics technique (by computational fluid dynamics ACE+ commercial code). The physical model is presented for a 5 cm×4.92 cm×0.4479 cm 3D geometry test cell with serpentine channels and counter flow. Subsequently, the model is applied to explore cell temperature effects in the cell environment with different relative humidity of inlet. The numerical model is validated and agreed well with the experimental data. The nonuniformity of thermal and water-saturation distributions is calculated and analyzed as well as its influence on the cell performance. As the cell is operated at low voltages (or high current densities), the thermal field of fuel cell tends to be nonuniform and exists locally in hot spots. The mechanism of thermal field and water content interacted with membrane dehydration and cathode water flooding will be discussed and revealed their influences on the cell performance, stability and degradation will be revealed.
机译:已经开发了三维(3D)模型来模拟质子交换膜燃料电池。该模型同时考虑了电化学动力学,电流分布,流体动力学和多组分传输。使用基于有限体积的计算流体动力学技术(通过计算流体动力学ACE +商业代码),开发并数值求解了一组质量,动量,能量,种类和电流的守恒方程。为具有蛇形通道和逆流的5 cm×4.92 cm×0.4479 cm 3D几何测试单元提供了物理模型。随后,该模型被用于探索在不同入口相对湿度的电池环境中电池温度的影响。数值模型经过验证,与实验数据吻合良好。计算和分析了热和水饱和度分布的不均匀性及其对电池性能的影响。当电池在低电压(或高电流密度)下运行时,燃料电池的热场趋于不均匀并且局部存在于热点中。讨论了热场和水含量与膜脱水和阴极注水相互作用的机理,并揭示了它们对电池性能,稳定性和降解的影响。

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